Ice Crystal Regulation in Aquatic Products via Physical‐Field‐Assisted Freezing: Mechanisms and Research Progress

冰晶 过冷 环境科学 生化工程 工艺工程 化学 计算机科学 纳米技术 食品科学 多不饱和脂肪酸 材料科学 脂质氧化 冰的形成 冰水 生物系统 蛋白质结晶 生物物理学 Crystal(编程语言) 制浆造纸工业
作者
Yuyang Zhang,Ting Xiao,Maninder Meenu,Xinxin Li,Tao Song,Sinan Zhang,Yuxiao Mao,Lihui Hu,Ying Liu,Hosahalli S. Ramaswamy,Maninder Meenu
出处
期刊:Comprehensive Reviews in Food Science and Food Safety [Wiley]
卷期号:25 (5): e70591-e70591
标识
DOI:10.1111/1541-4337.70591
摘要

Aquatic products provide one-fifth of global animal protein and are rich in long-chain n-3 polyunsaturated fatty acids. Their fragile muscle structure, high moisture, unsaturated lipids, and endogenous enzymes make them prone to quality loss during freezing. Traditional freezing forms large uneven ice crystals, causing 10%-25% drip loss and rapid lipid oxidation even under standard cold-chain conditions. Various physical-field-assisted freezing methods can regulate supercooling, ice nucleation, and unfrozen water distribution to optimize ice crystal formation. This review analyzes freezing-induced damage from microstructural damage, water migration, molecular instability, and species-specific biochemistry and evaluates technologies by mechanism validity, applicable range, species adaptability, and practical operability. Final product quality is largely determined by the degree of supercooling at nucleation, the rate of latent-heat removal during crystal growth, and the extent of field-induced perturbation to native proteins and lipids. Excessive treatment intensity will trigger tissue deterioration. Currently, high-pressure and continuous ultrasound-assisted freezing have mature mechanisms and applicable parameters, suitable for high-value aquatic products despite limited production capacity. By contrast, magnetic and low-frequency electric field-assisted freezing lack solid theoretical support, with unstable practical effects. This article classifies these techniques by mechanism, operation range, and engineering practicability and puts forward targeted application strategies and standardized research norms. Future studies should resolve contested mechanisms, test hybrid protocols under factorial designs, harmonize reporting standards, and validate scale-up performance.
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